WO2019203148A1 - 木構造建築物の耐力壁構造及び耐力壁施工方法 - Google Patents
木構造建築物の耐力壁構造及び耐力壁施工方法 Download PDFInfo
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- WO2019203148A1 WO2019203148A1 PCT/JP2019/015954 JP2019015954W WO2019203148A1 WO 2019203148 A1 WO2019203148 A1 WO 2019203148A1 JP 2019015954 W JP2019015954 W JP 2019015954W WO 2019203148 A1 WO2019203148 A1 WO 2019203148A1
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- face material
- metal plate
- load
- stiffening metal
- bearing wall
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- E—FIXED CONSTRUCTIONS
- E04—BUILDING
- E04B—GENERAL BUILDING CONSTRUCTIONS; WALLS, e.g. PARTITIONS; ROOFS; FLOORS; CEILINGS; INSULATION OR OTHER PROTECTION OF BUILDINGS
- E04B2/00—Walls, e.g. partitions, for buildings; Wall construction with regard to insulation; Connections specially adapted to walls
- E04B2/56—Load-bearing walls of framework or pillarwork; Walls incorporating load-bearing elongated members
Definitions
- the present invention relates to a load-bearing wall structure and a load-bearing wall construction method for a wooden structure. More specifically, the present invention reliably prevents the occurrence of a punching shear phenomenon and increases the toughness of the load-bearing wall to increase its wall magnification.
- the present invention relates to a load-bearing wall structure and a load-bearing wall construction method (structure and construction method of bearing wall of wooden construction building) that can be improved.
- the wooden frame construction method is generally a construction method for constructing a wooden frame structure by assembling timbers having a square section as columns and beams, and is the most popular conventional method in Japan (Japan).
- the wooden frame wall construction method is also called the two-by-four method, which is “a construction method in which walls and floor slabs are provided by striking structural plywood and the like on a framework using wood” (2002, Ministry of Land, Infrastructure, Transport and Tourism notification number No. 1540 and No. 1541).
- the steel frame assembly method is a method of constructing a steel structure framework by assembling steel materials constituting columns, beams, braces and the like.
- the steel house method is conceptually a construction in which the wooden frame material of the wooden frame wall method is replaced with lightweight steel, and is specified in the thin plate lightweight steel (2001, Ministry of Land, Infrastructure, Transport and Tourism Notification No. 1641).
- This is a steel frame construction method.
- a reinforced concrete structure of a ramen structure type or a wall structure type is known.
- the construction methods for wooden structures are broadly divided into wooden frame construction methods and wooden frame construction methods. Due to recent large-scale earthquakes, research on earthquake resistance of wooden structures has attracted particular attention in Japan in recent years.
- the frame length of a load-bearing wall that is effective in terms of structural strength is used as an index to indicate the strength of a wooden structure against short-term horizontal loads (seismic force, wind pressure, etc.) Is generally used (Patent Document 1: Japanese Patent Laid-Open No. 2001-227086).
- the wall magnification corresponding to the structure of the load-bearing wall is used for calculating the shaft length.
- the wall magnification is an index of the seismic performance or the strength performance of the bearing wall, and the greater the value, the greater the seismic strength.
- the earthquake resistance of the entire building can be improved by adopting a bearing wall structure with a relatively high wall magnification.
- wooden structures require the amount of walls required by the Building Standards Act that can exhibit the required earthquake resistance, and the strength of wooden buildings against short-term horizontal loads is the wall magnification of the load-bearing walls.
- the existing wall amount (bearing wall shaft length x wall magnification) that is greater than the required wall amount is ensured in the design in both the beam-to-beam direction and the beam direction.
- the existing wall amount (bearing wall shaft length x wall magnification) that is greater than the required wall amount is ensured in the design in both the beam-to-beam direction and the beam direction.
- the performance test to determine the wall magnification of the wooden bearing wall is an in-plane shear test. It is. In this test, a predetermined horizontal load is repeatedly applied to the test piece of the bearing wall, and the relationship between the horizontal load and the shear deformation angle is obtained.
- the wall magnification is horizontal as described in many technical literatures such as “Allowable Stress Design for Wooden Shaft Construction [1] (2017 edition)”, pages 63 and 300 (Non-patent Document 1).
- the short-term allowable shear strength is calculated based on the load and the shear deformation angle, and is divided by a predetermined strength (wall length (m) ⁇ 1.96 (kN / m)). Therefore, the wall magnification is a value obtained by dividing the short-term allowable shear strength by the reference numerical value.
- the short-term allowable shear strength which is the basis for calculating the wall magnification, is obtained by multiplying the value indicating the smallest value (short-term standard strength) among the following four indices by a variation coefficient and a predetermined coefficient (cause of a decrease in yield strength). Is a value multiplied by a coefficient for evaluating.
- the ultimate load-bearing strength (correction value) is relatively large. Therefore, even if the maximum yield strength equivalent value is a relatively small value, a relatively large value of the wall magnification can often be set. . That is, the wall magnification of the wooden structure bearing wall does not necessarily depend only on the increase in the maximum yield strength equivalent value, but has a property that can be increased as desired by comprehensive examination related to other factors such as ultimate strength. .
- Fixing tools, mooring tools or fasteners are often press-fitted or punched into a face material by a nailing machine (nail gun, nailer) or a work tool such as a screwdriver. Is included.
- Patent Documents 2 to 5 Patent No. 5415156, JP-A 2013-209809, JP-A 2013-238068, and JP-A 2012-202112
- a load-bearing surface material is formed using a belt-like reinforcing material.
- a method for fixing a face member of a wooden structure bearing wall that is fixed to a wall base of a wooden frame member such as a column or a beam or a wooden frame member is described.
- This type of face material fixing method is a method in which a belt-like reinforcing material such as a synthetic fiber fabric or a belt-like reinforcing material such as a steel plate or a wooden fiber board is continuously laid along the edge of the face material, Thus, a large number of fasteners such as nails are driven at a predetermined interval, whereby the face material is fixed to the wall base.
- the distance between the fasteners is optimized, and the band-shaped reinforcing material improves the holding material holding function of the fasteners. It may be possible to increase the proof stress and increase the wall magnification of the proof wall relatively large.
- JP 2001-227086 A Japanese Patent No. 5415156 JP 2013-209809 A JP 2013-238068 A JP 2012-202112 A
- a strip-shaped reinforcing member made of a steel plate is arranged along the edge of the load-bearing face member, and a large number of fasteners are press-fitted or driven with a work tool or the like from above the strip-shaped reinforcing member, thereby preventing short-term horizontal loads.
- the maximum yield strength can be increased relatively, and the occurrence of the punching shear phenomenon can be prevented in advance.
- the rigidity of the edge band of the face material in which the strip-shaped reinforcing material is arranged is improved as a whole, but the rigidity of this band is not separated from the band-shaped reinforcing material.
- the rigidity of the reinforcing area (the area where the plate-shaped reinforcing material such as the belt-shaped reinforcing material does not exist or is not covered by the plate-shaped reinforcing material and is not reinforced by the plate-shaped reinforcing material) is relatively different.
- the present inventors Due to such an extreme change in rigidity, the present inventors have the phenomenon that cracks or breakage occurs in the non-reinforcing region of the face material, and as a result, the ultimate strength of the bearing wall is relatively reduced. It became clear by experiment. Such a phenomenon makes it difficult to improve the wall magnification.
- the present invention has been made in view of such circumstances, and the purpose of the present invention is to provide a bearing wall using a metal reinforcing material associated with a fastener for fastening the bearing surface to the wall base.
- a tree that can reliably prevent the occurrence of the punching shear phenomenon and increase the toughness of the bearing wall by appropriately arranging such reinforcing materials, thereby eliminating the obstacles that hinder the improvement of the wall magnification. It is to provide a load-bearing wall structure and a load-bearing wall construction method for a structural building.
- the present invention provides a wooden structure base of a wooden shaft construction method or a wooden frame wall construction method, and a load bearing surface material fastened to the wall base by a fastener having a shaft portion and a head.
- the fastener is disposed at an outer peripheral portion and an intermediate portion of the face material at a predetermined interval, and the shaft portion penetrates the face material by a striking force or pressure of a work tool against the fastener.
- Extending, press-fitting, penetrating or screwing into the wall base, and the head is disposed at a position equivalent to the outer surface of the face material, and the face material is attached to the wall base by the holding force of the fastener.
- the load-bearing wall structure of a wooden structure that is held together Arranged over the entire height of the face material in the edge bands on both sides of the face material at substantially the same distance as the spacing of the fasteners, and the back surface is in close contact with or adhered to the outer surface of the face material, It has a stiffening metal plate that reinforces the face material part in the vicinity of the fastener, The stiffening metal plates are separated from each other, and between the adjacent stiffening metal plates, a non-reinforcing zone in which the stiffening metal plate does not exist is formed in the edge zone, The stiffening metal plate is perforated at the shaft portion by the striking force or pressure of the work tool acting on the fastener when the fastener is struck or press-fitted and penetrates the shaft portion.
- a bearing wall structure is provided that has a strength and a plate thickness that holds, supports, or supports the head in substantially the same position as the outer surface of the face material.
- the present invention also positions the load bearing face material with respect to the wooden structure base of the wooden shaft construction method or the wooden frame wall construction method, and attaches a fastener having a shaft portion and a head portion to the outer peripheral portion of the face material at a predetermined interval.
- the face material is perforated with a striking force or pressure of a work tool against the fastener, and a shaft portion penetrating the face material is extended, press-fitted, penetrated or screwed into the wall base, and the head
- a stiffening metal plate that reinforces the surface material portion in the vicinity of each fastener by closely contacting or bonding the back surface to the outer surface of the surface material is spaced on both sides of the surface material at substantially the same interval.
- “Wood structure wall foundation” refers to the concept of the exterior and interior walls of wooden buildings, including the interior and exterior wall foundations.
- the “outer peripheral part” of the face material means the outer peripheral part of the face material. And it is the concept including the edge zone of both sides of a face material, and the edge zone of the upper end part and lower end part of a face material.
- the “intermediate part” of the face material is a part of the face material that is generally fixed or locked to a stud or the like, and means a zone extending in the vertical direction or the vertical direction between the upper and lower edge zones.
- support means “theoretical fulcrum has been put into practical use in engineering” (“Architecture Dictionary 2nd Edition” (published by Shokokusha)).
- “substantially the same position” means that the outer surface of the head of the fastener and the outer surface of the face material are located in substantially the same surface.
- the stiffening metal plate prevents the head portion of the fastener from being recessed into the face material, and thereby the punching share in which the fastener is pulled out or penetrates from the face material when a horizontal load is applied. Effectively prevent the occurrence of the phenomenon. Further, the stiffening metal plate does not reinforce the rigidity of the entire edge band but constitutes a reinforcing means for locally increasing the rigidity of the face material portion in the vicinity of the fastener.
- the rigidity of the entire area of the face material including the edge band is maintained in a leveled state as a whole, and the face material is a conventional configuration in which a band-shaped reinforcing material is continuously laid in the edge band (Patent Document 2). Compared with ⁇ 5), it exhibits uniform or uniform rigidity as a whole. Therefore, according to the load-bearing wall structure configured as described above, the rigidity changes between or different from the reinforcement region of the face material and the non-reinforcement region of the face material. It is possible to prevent a stress concentration state or the like from being locally generated at a boundary portion with the reinforcing region, and thereby prevent a situation in which a crack or breakage occurs in the face material.
- the proof wall according to the present invention is a proof wall having a conventional configuration having a strip-shaped reinforcing material continuously extending in the edge zone (Patent Documents 2 to 5).
- Patent Documents 2 to 5 As described in (1), compared to a bearing wall in which an elongated belt-shaped reinforcing material is disposed along the edge of the face material, the face material is less likely to crack or break, resulting in a tough and relatively high wall. Has a tendency to exhibit magnification.
- the bearing wall according to the present invention the rigidity of the entire face material is maintained uniform or leveled, so that the stress generated during shear deformation is relatively well dispersed, and the face material has the inherent toughness and It means that the deformation following ability is effectively and sufficiently exhibited. That is, according to the present invention, even if the maximum proof stress equivalent value is slightly inferior to the conventional load bearing walls (Patent Documents 2 to 5), the ultimate proof stress (correction value) obtained in relation to toughness and deformation followability is obtained. ) Is relatively high, and as a result, a bearing wall exhibiting a high wall magnification is obtained.
- the present invention provides a load-bearing wall of a wooden structure having a load-bearing wall structure having the above-described configuration. From still another aspect, the present invention provides a wooden structure having such a bearing wall.
- the present invention is also an inorganic face material that can be used in the load-bearing wall structure configured as described above, and the main body of the stiffening metal plate is integrally disposed on the outer surface of the face material at least in an edge zone of the face material. An inorganic face material is provided.
- a punching shear phenomenon is applied to the load-bearing wall using a metal reinforcing material associated with a fastener that holds the load-bearing face material to the wall base.
- a metal reinforcing material associated with a fastener that holds the load-bearing face material to the wall base.
- FIG. 1 is a front view showing a load-bearing wall structure of a wooden structure building.
- FIG. 2 (A) is a front view of the face material fastening portion showing the configuration of the face material fastening portion of the load bearing wall in which the face material is fastened to the column by a nail and a stiffening metal plate.
- FIGS. 2 (C) and 2 (D) show a state in which a nail is driven into a stiffening metal plate. It is a perspective view of a part.
- FIG. 3 (A) and 3 (B) are partial perspective views of the load bearing wall structure showing a mode in which a nail is driven into a stiffening metal plate attached to a face material.
- FIG. 4 is a front view of a face material fixing portion of a load bearing wall showing a modified example of the stiffening metal plate.
- FIG. 5 is a partial perspective view of a load bearing wall structure showing a mode in which a nail is driven into a circular contour stiffening metal plate attached to a face material.
- FIG. 6 is a front view showing a load-bearing wall structure of a wooden structure building using a stiffening metal plate having a circular outline.
- FIG. 7 is a front view showing a modification of the load bearing wall structure shown in FIG. FIG.
- FIG. 8 is a front view showing a configuration of a test body used in an in-plane shear test of a load bearing wall structure according to an example of the present invention.
- FIG. 9 is a front view showing a configuration of a test body used in an in-plane shear test of a load bearing wall structure according to a comparative example.
- FIG. 10 is a diagram showing the test results of an in-plane shear test of a test body provided with a general-purpose gypsum board as a load-bearing surface material.
- FIG. 10 shows the load resistance (load) and displacement (shear deformation angle). The correlation is shown.
- FIG. 10 shows the load resistance (load) and displacement (shear deformation angle). The correlation is shown.
- FIG. 11 is a diagram showing the test results regarding the in-plane shear test of a test body provided with a gypsum-based face material mixed with glass fiber as the load-bearing face material.
- FIG. 11 shows the load resistance and load. The correlation of (shear deformation angle) is shown.
- an inorganic face material is used as the face material, and a nail, a screw or a screw is used as the fastener, and each of the stiffened metal plates is a single fastener.
- a nail, a screw, or a screw is driven into a stiffened metal plate by a work tool such as a nail driver, a screw driver, or a screw driver.
- the impact force or pressure of the work tool acts on the head of the nail, screw, or screw, and the shaft portion of the nail, screw, or screw pierces the stiffening metal plate by its tip, and the face material and the wall substrate ( It penetrates or press-fits to a column, beam or horizontal member) and is integrated with the wall substrate.
- the stiffening metal plate is further arranged over the entire width of the face material in the edge zone of the upper end portion and the lower end portion of the face material, and the stiffening metal plates are spaced apart from each other.
- a non-reinforcing zone in which no rigid metal plate exists is formed between adjacent stiffened metal plates in the edge zones of the upper end and the lower end.
- the stiffening metal plate is further arranged at the intermediate portion of the face material over the entire height of the face material, the stiffening metal plates are separated from each other, and the stiffening metal plate is A non-existing non-reinforcing zone is formed between adjacent stiffening metal plates in the middle.
- the stiffened metal plates are arranged or aligned in the edge zone (and middle part) of the face material at substantially equal intervals.
- a fastener that holds the bearing face to the wall substrate without engaging the stiffening metal plate is disposed between the stiffening metal plates by omitting a portion of the stiffening metal plates in a row, or In addition, it is additionally arranged in a non-reinforcing area between the stiffening metal plates.
- the stiffening metal plate has an adhesion means, an adhesion means, a mooring means or a locking means for holding the metal plate body on the outer surface of the face material before the fastener is applied, and is attached to the outer surface of the face material. Attached or temporarily secured.
- the stiffened metal plate is pre-attached or temporarily fixed to the edge band of the face material at the time of manufacture of the face material, at the time of shipment from the factory, at the time of storage, or the edge band of the face material at the construction site or construction site. Attached or temporarily secured.
- adhesive means or adhesive means an adhesive (material) or adhesive (material) applied to the back surface of the stiffening metal plate, or an adhesive tape or double-sided tape inserted between the stiffening metal plate and the face material, etc.
- the anchoring means or the locking means include staples and pins.
- an index indicating the driving position of the fastener is provided at the center of the stiffened metal plate. The index is engraved, formed, applied, or disposed on the stiffened metal plate by means such as marking, paint, ink, printing, bulge, dent, unevenness, or protrusion. As an index, a small-diameter through hole having a diameter smaller than the diameter of the shaft portion of the fastener may be formed in the stiffened metal plate.
- the stiffening metal plate has a circular, polygonal or square outline in front view, and the maximum front view size of the stiffening metal plate is between the axis of the fastener and the edge of the face material.
- the minimum dimension of the metal plate when viewed from the front is set to a dimension that is at least twice the diameter of the head or the outer dimension (maximum outer dimension).
- the thickness of the metal plate is set to a dimension within a range of 0.05 to 2.0 mm. More preferably, the metal plate is made of a steel plate having a plate thickness in the range of 0.2 to 0.8 mm and having a diameter or a dimension in the range of 20 to 30 mm on one side and having a round or square shape in front view.
- the center part or the center of gravity position of the steel plate is disposed at the driving position of the fastener.
- the fastener and the stiffened metal plate have an edge band at intervals of 200 mm or less and 50 mm or more starting from the axis of the specific fastener or the center point of the specific stiffened metal plate.
- the face material is made of a gypsum-based face material (gypsum board or gypsum board) having a specific gravity of 0.85 or less, preferably 0.8 or less.
- stiffened metal plates prevent the occurrence of cracks or breakage in plaster face materials during short-term horizontal loads such as earthquakes, or during vibration, and contribute to the improvement of wall magnification. .
- FIG. 1 is a front view showing a load-bearing wall structure of a wooden structure building.
- the bearing wall shown in FIG. 1 has a structure in which a gypsum-based face member 10 having a thickness of 9.5 mm, a width of 910 mm, and a height of about 2800 to 3030 mm (for example, 2900 mm) is fixed to a wooden frame on a concrete (RC) foundation 1.
- a gypsum-based face material 10 a gypsum board (JIS A 6901) in which both sides of a flat gypsum core are coated with a base paper for gypsum board, or both sides of a flat core mixed with glass fiber are used for gypsum board.
- Gypsum board or gypsum board coated with base paper
- glass fiber reinforced gypsum board coated with base paper
- a gypsum board having a specific gravity of 0.67 JIS A 6901
- the product name “Tiger EX board” A glass fiber reinforced gypsum board having a specific gravity of 0.79 improved from a registered trademark (product of Yoshino Gypsum Co., Ltd.) is used.
- a gypsum-based face material 10 (hereinafter referred to as “face material 10”) is fixed to a base 2, a pillar 3, an intermediate pillar 4, and a horizontal member (body difference) 5 by a nail 20.
- the nail 20 is, for example, a plated iron round nail (NZ nail: JIS A5550).
- NZ nail JIS A5550
- an NZ50 nail (length: 50 mm, head diameter: approximately 6.6 mm, shaft diameter: approximately 2.75 mm) is used as the nail 20.
- the nails 20 are arranged at intervals S1 in the four-circumference outer peripheral zone of the face material 10, and are arranged at intervals S2 in the central zone of the face material 10 extending in the vertical direction.
- the interval S1 is set to a dimension within a range of 50 mm to 200 mm
- the interval S2 is set to a dimension within a range of 50 mm to 300 mm.
- the stiffening metal plate 30 is arranged along the outer edge of the face material 10 at the same interval S ⁇ b> 1 as the nail 20.
- the nail 20 is driven into the central portion of the stiffening metal plate 30 by the nail driver or the like at the outer peripheral portion of the face material 10, and is directly applied to the face material 10 by the nail driver or the like in the vertical center zone of the face material 10. Be driven in.
- the outer peripheral nail 20 pierces the central portion of the stiffening metal plate 30 and penetrates the stiffening metal plate 30 and penetrates into the outer peripheral portion of the face material 10 to penetrate the wall base materials 2, 3, 5 (base 2 And press-fit into the pillar 3 and the horizontal member 5).
- the nail 20 in the central zone penetrates into the central zone of the face material 10 extending in the vertical direction and press-fits into the stud 4.
- the load bearing wall structure shown in FIG. 1 uses the nail 20 and the stiffening metal plate 30 to integrally hold the four-circumferential outer peripheral portion of the face material 10 to the base 2, the pillar 3, and the horizontal member 5.
- 20 has a configuration in which a vertical band (vertical central band) at the center of the face material is integrally fastened to the stud 4. According to the proof stress verification test of the present inventors, which will be described later, such a structure of the wooden structure proof wall is advantageous in improving the wall magnification.
- FIG. 2 (A) is a front view of the face material fastening portion showing the structure of the face material fastening portion of the bearing wall formed by fastening the face material 10 to the column 3 with the nail 20 and the stiffening metal plate 30;
- 2B is a cross-sectional view taken along the line II of FIG. 2A, and
- FIGS. 2C and 2D show a mode in which the nail 20 is driven into the stiffening metal plate 30.
- FIG. It is a perspective view of the face material attachment part which shows.
- 3 (A) and 3 (B) are partial perspective views of the load-bearing wall structure showing a state in which the nail 20 is driven into the stiffening metal plate 30 attached to the face material.
- the stiffening metal plate 30 is a rectangular thin open hole or open metal blind plate having dimensions of width W and height H. In this example, the width W and height H are set to about 25 mm. It is a metal plate with a square outline in front view.
- the stiffening metal plate 30 is preferably made of a galvanized steel sheet having a thickness of 0.05 to 2.0 mm, more preferably 0.2 to 0.8 mm (for example, 0.4 mm).
- This type of steel sheet is relatively excellent in terms of corrosion resistance, ant resistance, economy, etc., so it can be suitably used as a material for metal plates, but other types of steel sheets and aluminum / zinc alloys
- a plate of a general metal material such as a plated steel plate (for example, a Galvalume steel plate (registered trademark)), an aluminum alloy plate, a stainless alloy plate, a copper plate, or a lead plate may be used as the stiffening metal plate 30.
- a resin-coated metal plate, a laminate of dissimilar metal plates, or the like may be used as the stiffening metal plate 30.
- the nail 20 is disposed at a position separated from the edge of the face material 10 by a distance S3, and the center of the stiffening metal plate 30 is positioned at a position separated from the edge of the face material 10 by a distance S3.
- the distance S3 is set to a dimension within the range of about 5 to 20 mm, preferably 10 to 15 mm (12 mm in this example).
- 2 (C), 2 (D), and 3 (A) show a mode in which the nail 20 is driven into the stiffening metal plate 30 attached to the face material 10.
- the nail 20 is held and supported by the face member 10 at a position equivalent to the outer surface of the face member 10 and a shaft portion 21 that penetrates or press-fits the face member 10 by a striking force or pressure of a nail driver or the like. Or a head 22 to be supported.
- the stiffening metal plate 30 is pre-attached to the edge band of the face material 10 by the attaching means 33 at the time of manufacture of the face material 10, at the time of shipment from the factory, at the time of storage, or by the attaching means 33 at the construction site or construction site. It is attached to the edge zone of the face material 10.
- the stiffening metal plate 30 does not necessarily need to be firmly fixed to the face material 10, and the stiffening metal plate 30 may be attached to the face material 10 in a temporarily fixed or temporarily fixed manner.
- the stiffening metal plate 30 is provided with a cross-shaped index 31 indicating the driving position of the nail 20.
- the index 31 is preferably provided at the center or the center of gravity of the stiffening metal plate 30.
- Arbitrary indication may be engraved on the stiffening metal plate 30 as an index 31 by means such as marking, paint, ink, printing, bulge, dent, unevenness, and protrusion, applied, formed or arranged.
- a nail driver (not shown) is positioned so that the tip of the nail 20 is press-fitted into the center of the index 31, and the nail driver's driving pressure Pr is used.
- the tip portion of the shaft portion 21 penetrates the stiffening metal plate 30 and penetrates the stiffening metal plate 30.
- the outer surface of the head portion 22 is substantially flush with the outer surface of the stiffening metal plate 30 as shown in FIG.
- the head 22 is held, supported or supported by the stiffening metal plate 30 at a position substantially the same as the outer surface of the face material 10, and the nail 20 is shown in FIGS. 2 (D) and 3 (A).
- the face material 10 penetrates or press-fits into the face material 10 and the pillar 3, and as a result, the face material 10 is fastened integrally to the pillar 3. As shown in FIG. 3A, the face material 10 is further fastened to the space pillar 4 by a nail 20 directly driven into the face material 10 by a nail driver or the like at a position corresponding to the space pillar 4.
- the stiffening metal plate 30 is not attached to the face material 10 in advance, and the stiffening metal plate 30 is used when the nail 20 is driven into the stiffening metal plate 30 by a nail driver (not shown).
- a nail driver (not shown).
- the nail 20 may be penetrated or press-fitted into the face material 10 and the column 3 by hitting the nail 20 against the stiffening metal plate 30 with a manual work tool such as a hammer.
- FIG. 4 is a front view of a face material fastening portion of a load bearing wall showing a modified example of the stiffening metal plate 30.
- 4A shows a stiffening metal plate 35 having a true circular outline with a diameter D
- a rigid metal plate 36 is shown.
- FIG. 4C shows a vertically elongated rectangular stiffening metal plate 37 having a width W and a height H
- An index (not shown) indicating the driving position of the nail 20 is arranged at the center of gravity of each of the metal plates 35 to 38, and the nail 20 is driven into the center of gravity of each of the metal plates 35 to 38.
- FIG. 5 is a partial perspective view of a load-bearing wall structure showing a mode in which nails are driven into a circular stiffening metal plate 35
- FIG. 6 is a load-bearing wall structure of a wooden structure building using the stiffening metal plate 35.
- FIG. 7 is a front view showing a modification of the load bearing wall structure shown in FIG.
- the circular contour stiffening metal plate 35 is attached to the edge zone of the face material 10 in exactly the same manner as the square contour stiffening metal plate 30.
- the nail 20 is driven into the stiffening metal plate 35 by the driving pressure Pr of a nail driver (not shown) and penetrates or press-fits into the face material 10 and the column 3. Is integrally fastened.
- the face material 10 is further fastened to the stud 4 by the nail 20 directly driven into the face material 10 by a nail driver or the like.
- FIG. 6 A front view of the load-bearing wall structure thus constructed is shown in FIG.
- the bearing wall structure shown in FIG. 6 has a configuration in which nails 20 and stiffening metal plates 35 are arranged at equal intervals S1 around the entire outer periphery (four circumferences) of the face member 10.
- FIG. 7 shows a front view of a load bearing wall structure having a configuration in which the stiffening metal plates 35 on the upper and lower edges of the face member 10 are omitted.
- the stiffening metal plates 35 do not necessarily have to be arranged over the entire circumference (four rounds) of the outer periphery of the face material 10, and as shown in FIG. 7, the stiffening metal plates 35 are provided only in the edge bands on both sides extending in the vertical direction. Can be arranged.
- FIG. 8 is a front view showing the configuration of the test bodies (Examples 1 and 2) used in the in-plane shear test of the load bearing wall structure shown in FIG.
- FIG. 9 is a front view showing a configuration of a test body of Comparative Examples 1-2 and 2-2 described later.
- the same reference numerals are assigned to components or components corresponding to or corresponding to the components or components of the above-described embodiments.
- 10 and 11 are diagrams showing the test results of the in-plane shear test.
- the present inventors have a specimen having a wall width of 1820 mm and a height of 2730 mm having the bearing wall structure shown in FIG. And an in-plane shear test was conducted using a no-load caustic test device.
- the test body shown in FIG. 8 is a test body having the bearing wall structure shown in FIG. The plate 35 is arranged.
- the test body shown in FIG. 8 has a main structure of a wooden frame composed of a cedar lumber base 2 and a pillar 3 having a cross section of 105 ⁇ 105 mm and a horizontal pine lumber 5 having a cross section of 180 ⁇ 105 mm supported by the pillar 3. Part.
- a cedar lumber joint column 4 ′ having a cross section of 45 ⁇ 105 mm is erected, and between the columns 3 and the joint column 4 ′, a cedar lumber column 4 having a cross section of 30 ⁇ 105 mm is provided.
- a trunk joint 5 ′ of cedar lumber or bay pine lumber is installed between the pillar 3 and the intermediate pillar 4, and between the intermediate pillar 4 and the joint intermediate pillar 4 ′.
- an attracting metal 40 is disposed at the joint between the base 2 and the column 3 and is disposed at the joint between the beam 5 and the column 3.
- the base 2, the pillar 3, the joint spacer 4 ′, the spacer 4, the horizontal member 5, and the trunk joint 5 ′ constitute a shaft member having a bearing wall structure, and a rectangular shaft group is formed by these members.
- H3 835 mm
- the wall length L was set to 1.82 m.
- the face material 10 is divided into upper and lower parts by the trunk joint 5 ′, the lower face material 10a has a width of 910 mm and a height of 1820 mm, and the upper face material 10b is 910 mm in width and height. It has a dimension of 865 mm.
- the allowance dimensions h4 and h5 of the face materials 10a and 10b were set to 30 mm.
- a NZ50 nail (length: 50 mm, head diameter: about 6.6 mm, shaft diameter: about 2.75 mm) is used as the nail 20, and a galvanized steel sheet having a diameter of 24 mm and a thickness of 0.4 mm is used as the stiffening metal plate 35. (Round circular blind plate) was used.
- the inventors of the present invention manufactured the following two types of test bodies and conducted an in-plane shear test using a non-loading caustic test apparatus.
- gypsum board JIS A 6901 having a thickness of 9.5 mm, a width of 910 mm, and a specific gravity of 0.67 as the face materials 10a and 10b (hereinafter referred to as “Example 1”).
- Example 1 an example using gypsum board (JIS A 6901) having a thickness of 9.5 mm, a width of 910 mm, and a specific gravity of 0.67 as the face materials 10a and 10b
- Example 2 glass fiber reinforced gypsum board having a thickness of 9.5 mm, a width of 910 mm, and a specific gravity of 0.79 was used as the face materials 10a and 10b (hereinafter referred to as “Example 2”).
- the test results of the test samples of Examples 1 and 2 are shown in FIGS. Evaluation of the test results shown in each figure will be
- test specimens having the following configurations as Comparative Examples 1-1, 1-2, 2-1, and 2-2, and performed an in-plane shear test using a non-loading caustic test apparatus. Carried out.
- Comparative Example 1-1 In the test body having the configuration shown in FIG. 8, the test body in which the stiffener metal plate 35 is not used at all and only the nail 20 is used and the face materials 10a and 10b are fastened to the wall base in FIG. As prepared.
- the face materials 10a and 10b are gypsum boards (JIS A 6901) having a thickness of 9.5 mm, a width of 910 mm, and a specific gravity of 0.67, as in the test body of Example 1.
- Comparative Example 1-2 In the test body having the configuration shown in FIG. 8, the stiffening metal plate 35 is replaced with a conventional band iron plate (band-shaped reinforcing material) 50 as shown in FIG. 9, and the nail 20 is driven into the band iron plate 50 to replace the face materials 10a and 10b.
- a test specimen fastened to the wall base in FIG. 8 was prepared as Comparative Example 1-2.
- the face materials 10a and 10b are gypsum boards (JIS A 6901) having a thickness of 9.5 mm, a width of 910 mm, and a specific gravity of 0.67, as in the test body of Example 1.
- the dimensions of the strip iron plate 50 shown in FIG. 9 are about 800 to 900 mm in length, 60 mm in width, and 0.4 mm in thickness.
- Band iron plates similar to the band iron plate 50 are described in the above-mentioned Patent Documents 2 to 5 (Patent Nos. 5415156, 2013-209809, 2013-238068, 2012-202112). Therefore, further detailed description is omitted.
- Comparative Example 2-1 Similar to the test sample of Comparative Example 1-1, a test sample in which the stiffener metal plate 35 is not used at all and the face materials 10a and 10b are fastened to the wall base of the test sample in FIG. However, a test body using a glass fiber reinforced gypsum board having a thickness of 9.5 mm, a width of 910 mm, and a specific gravity of 0.79 as the face materials 10a and 10b was prepared as Comparative Example 2-1.
- Comparative Example 2-2 Similar to the test sample of Comparative Example 1-2, the test sample was formed by driving the nail 20 into the steel strip 50 and fastening the face materials 10a and 10b to the wall base in FIG. 8, but with a thickness of 9.5 mm and a width of 910 mm. A test body using a glass fiber reinforced gypsum board having a specific gravity of 0.79 as the face materials 10a and 10b was prepared as Comparative Example 2-2.
- 10 and 11 show the proof stress (load) and displacement in the proof wall structure (Examples 1 and 2) according to the present invention and the proof wall structures of Comparative Examples 1-1, 1-2, 2-1, and 2-2. It is a diagram which shows the characteristic of (shear deformation angle). 10 and 11, black circles on each envelope indicate a 0.8 Pmax load reduction area after the maximum proof stress (maximum load) Pmax. 10 and 11 show the maximum proof stress of each example and each comparative example as Pmax1 to Pmax6, and the shear deformation angle on the envelope of the 0.8 Pmax load reduction region, that is, the ultimate displacement ⁇ u, For the examples and comparative examples, they are shown as ⁇ u1 to ⁇ u6.
- the wall magnification is a value obtained by dividing the short-term allowable shear strength Pa by a predetermined reference value (L ⁇ 1.96), and the short-term allowable shear strength Pa is understood from the equations of FIGS. 10 and 11. As is possible, it is a value obtained by multiplying the short-term reference strength P 0 by a predetermined reduction coefficient ⁇ , and is proportional to the value of the short-term reference strength P 0 .
- the ultimate strength (correction value) described above is the smallest.
- the ultimate strength (correction value) was adopted as the short-term reference strength P 0 .
- the ultimate proof stress (correction value) is a value obtained by correcting the ultimate proof strength Pu based on the plasticity ratio ⁇ , as can be understood from the equations of FIGS.
- the plasticity factor ⁇ is proportional to the value of the ultimate displacement ⁇ u, and is a numerical value that objectively shows the property of continuing to deform beyond the elastic deformation range (without breaking or collapsing) when a load is continuously applied.
- the plasticity ratio ⁇ can be regarded as an index of toughness and deformation followability.
- Example 2 When the bearing wall structure reinforced with the stiffening metal plate 35 (Example 2) is compared with the bearing wall structure reinforced with the band iron plate 50 (Comparative Example 2-2), the bearing wall structure of Example 2 is The maximum proof stress Pmax is slightly inferior to that of Comparative Example 2-2, but the plastic modulus ⁇ is superior to that of Comparative Example 2-2. As a result, the load-bearing wall structure of Example 2 exhibits a shorter short-term allowable shear strength Pa and wall magnification than the load-bearing wall structure of Comparative Example 2-2.
- the maximum proof stress Pmax3 and Pmax6 of the test specimens of Comparative Examples 1-2 and 2-2 are larger than the maximum proof stress Pmax2 and Pmax5 of the test specimens of Comparative columns 1-1 and 2-1. This value is considerably increased, and this value is substantially equivalent to the maximum proof strengths Pmax1 and Pmax4 of the specimens of Examples 1 and 2.
- the maximum proof stress Pmax3 appears relatively early in the proof stress of Comparative Examples 1-2 and 2-2, and the shear deformation angle after the maximum proof stress Pmax6 as shown in FIG. As ⁇ increases, the yield strength tends to decrease relatively rapidly.
- the band iron plate 50 continuously laid in the edge band bridges a large number of nails 20 and enhances the rigidity of the edge band as a whole.
- the non-reinforcing area the area where the band iron plate 50 does not exist or is not covered by the band iron plate 50 and is not reinforced by the band iron plate 50
- a relatively large difference in rigidity occurs, and due to a change or difference in rigidity, excessive distortion, stress concentration, or excessive stress is applied to the non-reinforced area of the face material or the boundary between the reinforced area and the non-reinforced area. This is considered to be due to local stresses and the like, and cracks or breakage of the face material.
- the rigidity of the edge band of the face material 10 is improved as a whole, but the rigidity of this band and the band-shaped reinforcing material are increased.
- the rigidity of the non-reinforcing region separated from the surface is relatively large and cracks or breakage is likely to occur in the non-reinforcing region of the face material 10 due to such an extreme change in rigidity. Therefore, the ultimate displacement ⁇ u is relatively small with respect to the yield point displacement ⁇ v. As a result, the plasticity factor ⁇ is lowered, and it is difficult to improve the wall magnification and the short-term allowable shear strength as desired.
- the proof stress of the specimens of Examples 1 and 2 maintains a relatively high proof stress even when the shear deformation angle ⁇ increases after the maximum proof stress Pmax is obtained.
- Tend. This is because, in the test bodies of Examples 1 and 2, the rigidity of the entire face material is maintained to be uniform or leveled. Therefore, the stress generated during shear deformation is relatively well dispersed, and the face material 10
- the maximum proof stress Pmax1 and 4 are equal to or compared with the maximum proof stress Pmax3 of Comparative Example 1-3.
- the slightly lower than the maximum yield strength Pmax4 example 2-3 showing a high value relatively short- reference strength P 0.
- the load-bearing wall is provided with the stiffening metal plate 30 that reinforces the face member 10 only partially by adhering or bonding the back surface to the outer surface of the face member 10.
- the stiffening metal plate 30 is disposed on the outer peripheral portion of the face member 10 with a spacing S1 substantially the same as the spacing of the nails 20.
- the stiffening metal plates 30 are separated from each other, and a non-reinforcing region of a face material in which the stiffening metal plate 30 does not exist is formed on the outer peripheral portion.
- the nail 20 is driven into the metal plate by a working tool such as a nail driver, and the shaft portion 21 of the nail pierces and penetrates the stiffening metal plate to make a wall base material (base 2, pillar 3, horizontal member). 5) Insert or press fit.
- the stiffening metal plate 30 holds, supports or supports the head 22 of the nail 20 in substantially the same position as the outer surface of the face material.
- the head 22 is maintained in a substantially fixed state with respect to the face material 10 at normal time or in normal time, and is relative to follow the deformation of the structure at the time of a short-term horizontal load action or vibration such as an earthquake. Although it can be displaced, it continues to support the face material 10 so as to maintain a load or stress transferable state between the nail 20 and the face material 10.
- the punching shear phenomenon is generated by the stiffening metal plate 30 associated with the nail 20 that holds the face material 10 to the wall base material (base 2, column 3, horizontal member 5). While preventing reliably, the toughness of a wall body is improved and ultimate ultimate strength (correction value) is increased, thereby making it possible to improve the wall magnification of the wall body.
- the said embodiment and Example are related with the load-bearing wall of the 1st floor level of a wooden structure building, this invention can be applied similarly to the load-bearing wall of the 2nd or 3rd floor level.
- the lower end portion of the load bearing member is fastened to a horizontal member at the second or third floor level.
- the said embodiment and Example are related to the load-bearing wall structure of a wooden frame construction method, this invention is applicable similarly to the load-bearing wall structure of a wooden frame wall construction method.
- the load bearing surface material is fixed to a vertical frame, a lower frame, an upper frame, or the like instead of the base, the pillar, and the horizontal member.
- the bearing wall structure according to the present invention is classified according to the type of the face material, it is roughly classified into (1) an inorganic bearing wall and (2) a wooden bearing wall.
- a gypsum-based face material is used as the load-bearing face material.
- the load-bearing wall using the gypsum-based face material belongs to the inorganic load-bearing wall.
- Other face materials that can be used in the inorganic bearing wall include inorganic face materials such as various gypsum boards, various gypsum boards, volcanic glassy multilayer boards, calcium silicate boards, cement boards, and vermiculite boards.
- examples of the face material usable in the wood bearing wall include wood face materials such as plywood material (structural plywood), particle board, OSB (oriented strand board), and MDF (medium density fiber board). It is done.
- a gypsum-based face material having a thickness of 9.5 mm, a width of 910 mm, and a height of about 2800 to 3030 mm is used.
- the dimensions or specific gravity of the face material, the composition / composition of the face material, etc. is not limited to the specific items in the above embodiment (for example, a gypsum-based face material having a size range of 910 mm to 3030 mm is commercially available), and the height as in the test body shown in FIG. It is also possible to arrange a member such as a cross rail or a trunk connecting member at an arbitrary height position in the intermediate position in the direction.
- the present invention relates to a wooden structure configured to fasten a load bearing surface to a wooden wall base of a wooden frame construction method or a wooden frame wall construction method, and to structurally hold the load bearing surface on the wall base. Applicable to bearing walls of buildings.
- the present invention also includes a step of attaching a load bearing surface to a wooden wall base of a wooden frame construction method or a wooden frame wall construction method, and holding the load bearing surface structurally and integrally with the wall base. Applicable to wall construction methods. According to the present invention, in a load-bearing wall structure of a wooden structure building, it is possible to reliably prevent the occurrence of a punching shear phenomenon and improve the wall magnification.
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WO2021205993A1 (ja) | 2020-04-06 | 2021-10-14 | 吉野石膏株式会社 | 木構造建築物の石膏系耐力面材、耐力壁構造及び耐力壁施工方法 |
WO2023058470A1 (ja) | 2021-10-05 | 2023-04-13 | 吉野石膏株式会社 | 木構造耐力壁、木構造耐力壁の施工方法、木構造耐力壁の壁倍率増大方法、及び、石膏系耐力面材 |
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WO2021205993A1 (ja) | 2020-04-06 | 2021-10-14 | 吉野石膏株式会社 | 木構造建築物の石膏系耐力面材、耐力壁構造及び耐力壁施工方法 |
JP7012405B1 (ja) * | 2020-04-06 | 2022-01-28 | 吉野石膏株式会社 | 木構造建築物の石膏系耐力面材、耐力壁構造及び耐力壁施工方法 |
KR20220139442A (ko) | 2020-04-06 | 2022-10-14 | 요시노 셋고 가부시키가이샤 | 목조 건축물의 석고계 내력 면재, 내력 벽 구조 및 내력 벽 시공 방법 |
CN115362300A (zh) * | 2020-04-06 | 2022-11-18 | 吉野石膏株式会社 | 木结构建筑物的石膏系耐力面材、耐力墙结构和耐力墙施工方法 |
WO2023058470A1 (ja) | 2021-10-05 | 2023-04-13 | 吉野石膏株式会社 | 木構造耐力壁、木構造耐力壁の施工方法、木構造耐力壁の壁倍率増大方法、及び、石膏系耐力面材 |
KR20240089367A (ko) | 2021-10-05 | 2024-06-20 | 요시노 셋고 가부시키가이샤 | 목조 구조 내력벽, 목조 구조 내력벽 시공방법, 목조 구조 내력벽의 벽배율 증대 방법 및 석고계 내력 면재 |
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